Cloud AI Engineer

Synectics APAC

Bengaluru

On-site

INR 4,500,000 - 7,500,000

Full time

4 hours ago
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Job summary

Synectics APAC in Bengaluru seeks a senior cloud AI/GenAI architect to design scalable solutions on AWS and Azure. You will build RAG applications, AI agents, and LLM-based APIs, and implement serverless, event-driven AI services.

Role requires strong Python, Cloud, and DevOps capabilities, plus hands-on delivery of production-grade AI systems and collaboration with engineering teams.

Qualifications

  • Minimum 5+ years of hands-on experience in Cloud and GenAI technologies.
  • Experience delivering production-grade AI/GenAI applications.
  • Strong troubleshooting, system design, and problem-solving skills.
  • Experience using AI coding tools such as Amazon Q Developer, GitHub Copilot, Cursor, or Kiro.
  • Strong understanding of software engineering principles, design patterns, and clean code.

Responsibilities

  • Design and develop scalable AI/GenAI solutions on AWS and Azure.
  • Build and deploy RAG applications, AI agents, LLM-based APIs, and intelligent automation solutions.
  • Develop serverless and event-driven AI applications using AWS and Azure native services.
  • Integrate LLM applications with AWS Lambda and Azure Functions.
  • Design scalable distributed and event-driven cloud architectures.
  • Develop production-grade AI services using Python.
  • Build REST APIs using FastAPI, Flask, or similar frameworks.
  • Implement CI/CD pipelines and Infrastructure-as-Code for cloud workloads.
  • Implement monitoring, logging, security, governance, and cost optimization.
  • Work with enterprise applications, APIs, databases, and cloud platforms.
  • Participate in architecture discussions and provide technical guidance to engineering teams.

Skills

Python
GenAI
Cloud architectures
Serverless
CI/CD

Tools

AWS
Azure
FastAPI
Flask
Terraform
Kubernetes
Docker
boto3
LangChain

Job description

  • Design and develop scalable AI/GenAI solutions on AWS and Azure.
  • Build and deploy RAG applications, AI agents, LLM-based APIs, and intelligent automation solutions.
  • Develop serverless and event-driven AI applications using AWS and Azure native services.
  • Integrate LLM applications with AWS Lambda and Azure Functions.
  • Design scalable distributed and event-driven cloud architectures.
  • Build REST APIs using FastAPI, Flask, or similar frameworks.
  • Implement CI/CD pipelines and Infrastructure-as-Code for cloud workloads.
  • Implement monitoring, logging, security, governance, and cost optimization.
  • Work with enterprise applications, APIs, databases, and cloud platforms.
  • Participate in architecture discussions and provide technical guidance to engineering teams.
Key Responsibilities
  • Design and develop scalable AI/GenAI solutions on AWS and Azure.
  • Build and deploy RAG applications, AI agents, LLM-based APIs, and intelligent automation solutions.
  • Develop serverless and event-driven AI applications using AWS and Azure native services.
  • Integrate LLM applications with AWS Lambda and Azure Functions.
  • Design scalable distributed and event-driven cloud architectures.
  • Develop production-grade AI services using Python.
  • Build REST APIs using FastAPI, Flask, or similar frameworks.
  • Implement CI/CD pipelines and Infrastructure-as-Code for cloud workloads.
  • Implement monitoring, logging, security, governance, and cost optimization.
  • Work with enterprise applications, APIs, databases, and cloud platforms.
  • Participate in architecture discussions and provide technical guidance to engineering teams.
Technical Skills
Generative AI & LLMs
  • Amazon Bedrock and/or Azure OpenAI.
  • Azure AI Foundry and Azure AI Search.
  • Amazon SageMaker and/or Azure Machine Learning.
  • LLMs, embeddings, vector databases/search, and RAG architecture.
  • Prompt engineering, AI agents, and agent frameworks.
  • LLM evaluation, observability, guardrails, and responsible AI.
  • Serverless RAG and event-driven GenAI workflows.
Model Context Protocol & AI Agents
  • Understanding of Model Context Protocol (MCP) and experience building or configuring MCP servers.
  • Experience developing AI agents using Bedrock Agents, Agent Core, or similar frameworks.
Python & Application Development
  • Strong Python programming skills.
  • Experience with Lambda handlers and boto3.
  • Experience with LangChain and/or LlamaIndex.
  • REST API development using FastAPI, Flask, or equivalent.
  • Knowledge of JSON, REST APIs, authentication, OAuth/OIDC, and API integrations.
  • Experience with asynchronous programming and distributed systems.
Cloud, Serverless & DevOps
  • Strong hands-on experience with AWS and Azure.
  • Serverless development using Lambda, API Gateway, S3, DynamoDB, and Azure Functions.
  • Docker, ECS, EKS, and/or Kubernetes.
  • Infrastructure-as-Code using Terraform, AWS CDK/SAM, or Azure Bicep.
  • CI/CD using GitHub Actions, GitLab, Jenkins, Azure DevOps, or equivalent.
  • MLOps/LLMOps experience using MLflow, SageMaker, Azure ML, or similar platforms.
  • Monitoring and observability using CloudWatch, Azure Monitor, Application Insights, OpenTelemetry, or similar tools.
Additional Requirements
  • Minimum 5+ years of hands-on experience in Cloud and GenAI technologies.
  • Experience delivering production-grade AI/GenAI applications.
  • Strong troubleshooting, system design, and problem-solving skills.
  • Experience using AI coding tools such as Amazon Q Developer, GitHub Copilot, Cursor, or Kiro.
  • Strong understanding of software engineering principles, design patterns, and clean code.
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